Using facial reaction analysis and machine learning to objectively assess the taste of medicines in children.

PLOS digital health Pub Date : 2024-11-20 eCollection Date: 2024-11-01 DOI:10.1371/journal.pdig.0000340
Rabia Aziza, Elisa Alessandrini, Clare Matthews, Sejal R Ranmal, Ziyu Zhou, Elin Haf Davies, Catherine Tuleu
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Abstract

For orally administered drugs, palatability is key in ensuring patient acceptability and treatment compliance. Therefore, understanding children's taste sensitivity and preferences can support formulators in making paediatric medicines more acceptable. Presently, we explore if the application of computer-vision techniques to videos of children's reaction to gustatory taste strips can provide an objective assessment of palatability. Children aged 4 to 11 years old tasted four different flavoured strips: no taste, bitter, sweet, and sour. Data was collected at home, under the supervision of a guardian, with responses recorded using the Aparito Atom app and smartphone camera. Participants scored each strip on a 5-point hedonic scale. Facial landmarks were identified in the videos, and quantitative measures, such as changes around the eyes, nose, and mouth, were extracted to train models to classify strip taste and score. We received 197 videos and 256 self-reported scores from 64 participants. The hedonic scale elicited expected results: children like sweetness, dislike bitterness and have varying opinions for sourness. The findings revealed the complexity and variability of facial reactions and highlighted specific measures, such as eyebrow and mouth corner elevations, as significant indicators of palatability. This study capturing children's objective reactions to taste sensations holds promise in identifying palatable drug formulations and assessing patient acceptability of paediatric medicines. Moreover, collecting data in the home setting allows for natural behaviour, with minimal burden for participants.

利用面部反应分析和机器学习客观评估儿童的药物味道。
对于口服药物而言,适口性是确保患者可接受性和治疗依从性的关键。因此,了解儿童的味觉敏感性和偏好可以帮助配方设计师使儿科药物更容易被接受。目前,我们正在探索将计算机视觉技术应用于儿童对味觉试纸反应的视频是否能提供对适口性的客观评估。4 至 11 岁的儿童品尝了四种不同口味的试纸:无味、苦味、甜味和酸味。数据是在监护人的监督下在家中收集的,并使用 Aparito Atom 应用程序和智能手机摄像头记录了他们的反应。参与者用 5 点享乐量表对每条薯片进行打分。我们识别了视频中的面部地标,并提取了定量指标,如眼睛、鼻子和嘴巴周围的变化,以训练模型来对条状食品的口味和评分进行分类。我们收到了来自 64 名参与者的 197 个视频和 256 个自我报告的分数。享乐量表得出了预期结果:儿童喜欢甜味,不喜欢苦味,对酸味的看法也各不相同。研究结果揭示了面部反应的复杂性和多变性,并强调了眉毛和嘴角上扬等特定测量指标是味觉的重要指标。这项研究捕捉了儿童对味觉的客观反应,为确定适口的药物配方和评估患者对儿科药物的可接受性带来了希望。此外,在家庭环境中收集数据可使行为自然,并将参与者的负担降至最低。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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